Magnetoelectric MEMS Magnetic Field Sensor Based on a Laminated Heterostructure of Bidomain Lithium Niobate and Metglas

Author:

Turutin Andrei V.ORCID,Skryleva Elena A.,Kubasov Ilya V.ORCID,Milovich Filipp O.,Temirov Alexander A.,Raketov Kirill V.ORCID,Kislyuk Aleksandr M.,Zhukov Roman N.,Senatulin Boris R.,Kuts Victor V.ORCID,Malinkovich Mikhail D.,Parkhomenko Yuriy N.ORCID,Sobolev Nikolai A.ORCID

Abstract

Non-contact mapping of magnetic fields produced by the human heart muscle requires the application of arrays of miniature and highly sensitive magnetic field sensors. In this article, we describe a MEMS technology of laminated magnetoelectric heterostructures comprising a thin piezoelectric lithium niobate single crystal and a film of magnetostrictive metglas. In the former, a ferroelectric bidomain structure is created using a technique developed by the authors. A cantilever is formed by microblasting inside the lithium niobate crystal. Metglas layers are deposited by magnetron sputtering. The quality of the metglas layers was assessed by XPS depth profiling and TEM. Detailed measurements of the magnetoelectric effect in the quasistatic and dynamic modes were performed. The magnetoelectric coefficient |α32| reaches a value of 492 V/(cm·Oe) at bending resonance. The quality factor of the structure was Q = 520. The average phase amounted to 93.4° ± 2.7° for the magnetic field amplitude ranging from 12 to 100 pT. An AC magnetic field detection limit of 12 pT at a resonance frequency of 3065 Hz was achieved which exceeds by a factor of 5 the best value for magnetoelectric MEMS lead-free composites reported in the literature. The noise level of the magnetoelectric signal was 0.47 µV/Hz1/2. Ways to improve the sensitivity of the developed sensors to the magnetic field for biomedical applications are indicated.

Funder

Russian Science Foundation

Ministry of Education and Science of the Russian Federation

State Assignment

i3N

Fundação para a Ciência e Tecnologia

Ministério da Educação e Ciência

Publisher

MDPI AG

Subject

General Materials Science

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